Autschbach Jochen, Jorge Francisco E, Ziegler Tom
Department of Chemistry, University of Calgary, Calgary, Alberta, Canada T2N 1N4.
Inorg Chem. 2003 May 5;42(9):2867-77. doi: 10.1021/ic020580w.
Time-dependent density functional theory (TD-DFT) has for the first time been applied to the computation of circular dichroism (CD) spectra of transition metal complexes, and a detailed comparison with experimental spectra has been made. Absorption spectra are also reported. Various Co(III) complexes as well as Rh(en)(3) are studied in this work. The resulting simulated CD spectra are generally in good agreement with experimental spectra after corrections for systematic errors in a few of the lowest excitation energies are applied. This allows for an interpretation and assignment of the spectra for the whole experimentally accessible energy range (UV/vis). Solvent effects on the excitations are estimated via inclusion of a continuum solvent model. This significantly improves the computed excitation energies for charge-transfer bands for complexes of charge +3, but has only a small effect on those for neutral or singly charged complexes. The energies of the weak d-to-d transitions of the Co complexes are systematically overestimated due to deficiencies of the density functionals. These errors are much smaller for the 4d metal complex. Taking these systematic errors and the effect of a solvent into consideration, TD-DFT computations are demonstrated to be a reliable tool in order to assist with the assignment and interpretation of CD spectra of chiral transition metal complexes.
含时密度泛函理论(TD-DFT)首次被应用于过渡金属配合物圆二色性(CD)光谱的计算,并与实验光谱进行了详细比较。还报道了吸收光谱。本工作研究了各种Co(III)配合物以及[Rh(en)(3)](3+)。在对少数最低激发能的系统误差进行校正后,所得模拟CD光谱与实验光谱总体上吻合良好。这使得能够对整个实验可及能量范围(紫外/可见)的光谱进行解释和归属。通过纳入连续介质溶剂模型来估计溶剂对激发的影响。这显著改善了对电荷为+3的配合物电荷转移带的计算激发能,但对中性或单电荷配合物的激发能影响较小。由于密度泛函的缺陷,Co配合物弱d-d跃迁的能量被系统地高估。对于4d金属配合物,这些误差要小得多。考虑到这些系统误差和溶剂的影响,TD-DFT计算被证明是辅助手性过渡金属配合物CD光谱归属和解释的可靠工具。